Kinetic isotope fractionation during rich-CO2 water degassing: understanding the travertine geochemical record.

Léonora Fleurent, GEOTOP-UQAM, Earth and atmospheric sciences, Montréal, Canada, Elisabeth Gibert-Brunet, GEOPS-UMR 8148, CNRS - Université Paris Sud, orsay, France, Florent Barbecot, GEOTOP-UQAM, Departement of Earth and atmospheric sciences, Montréal, Canada, Marina Gillon, 1114 UAPV-INRA EMMAH, University of Avignon, Avignon, France and Vincent van Hinsberg, McGill University, Dept of Earth and Planetary Sciences, Montreal, QC, Canada

Contact First Author: Léonora Fleurent; leonora.fleurent@u-psud.fr

Abstract ID#: 35526

 

English Abstract:
The response of continental groundwater systems to recent climate fluctuations can be reconstructed via the continuous measurement of groundwater level, spring flow and climatic chronicles. When any data exist, recent reconstructions of groundwater dynamics may be reached through various recorders of environmental and hydrological conditions such as travertine. Although the relationship between geochemical records in travertine and environmental parameters seems to be accepted, the details of processes and their respective weight in the paleo-information are not clearly established.

Rate of CO2 degassing in CO2-rich spring likely influences calcite precipitation rate and the related δ18O and δ13C composition. Isotopic equilibrium is rarely maintained during travertine deposition and the degassing rate is the main controlling factor of the disequilibrium. Due to the lack of knowledge, fractionation processes, either kinetic or equilibrium, occurring between CO2-rich water, gas and travertine required specific pH and temperature-controlled laboratory tests. These tests were conducted on synthetic water at different pH to focus only on the degassing processes. Other tests were conducted on trace elements partitioning during calcite precipitation, to identify the origin of isotopic signature variability, and to constraint the way of recording past conditions.

All these tests confirmed that during a degassing leading to travertine precipitation, the speciation of dissolved inorganic carbon species is a major parameter to be tackled since a linear relationship between εDIC-CO2(g) and pH is observed. Indeed, we highlighted that for a high degassing rate, the isotopic equilibrium is not reached because the reaction greater involves light isotopes than heavy ones. There is thus different reaction rate between the species of dissolved inorganic carbon, the reactions occurring faster in the water than the one between water and gas, the latter being controlled by diffusion.